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I'm new to Play and also to hibernate and JPA. I'm using MySql DB and JPA I have included

import javax.persistence.Entity;
import javax.persistence.EntityManager;
import javax.persistence.EntityManagerFactory;
import javax.persistence.EntityTransaction;
import javax.persistence.Persistence;
import javax.persistence.Query;

import play.db.jpa.JPA;
import play.mvc.Controller;
import play.db.jpa.*;

I have this Query

List languages = FormLanguages.findAll();
render(languages);

Which runs correctly, but i want to select based on id, something like this

"select * from FormLanguages where id>10"

When i use like this

Query query = JPA.em().createQuery("select * from FormLanguages");
List<FormLanguages> articles = query.getResultList();
render(articles);

Which gives me IllegalArgumentException error

When use like this

List queryList = FormLanguages.em().createQuery("select * from FormLanguages").getResultList();
render(queryList);

which gives the same error please help me how to write Query

Also suggest me some websites

share|improve this question
up vote 4 down vote accepted

In your scenario:

List languages = FormLanguages.find("id > ?",10).fetch();

Should work.

This one and also this may help you learn the JPA query language. Once you are familiar with them, using find you can launch those queries. Or use named queries.

share|improve this answer
    
Thank You pere it worked – Arasu Jul 27 '11 at 9:36
    
I saw your links that was useful but can you suggest me links for Play Framework+Hibernate+JPA examples – Arasu Jul 27 '11 at 9:39
1  
The documentation has sone info, check this(playframework.org/documentation/1.2.2/model) and this (playframework.org/documentation/1.2.2/jpa) – Pere Villega Jul 27 '11 at 10:49

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